942 resultados para Fibras recicladas
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The use of raw materials from renewable sources for production of materials has been the subject of several studies and researches, because of its potential to substitute petrochemical-based materials. The addition of natural fibers to polymers represents an alternative in the partial or total replacement of glass fibers in composites. In this work, carnauba leaf fibers were used in the production of biodegradable composites with polyhydroxybutyrate (PHB) matrix. To improve the interfacial properties fiber / matrix were studied four chemical treatments to the fibers..The effect of the different chemical treatments on the morphological, physical, chemical and mechanical properties of the fibers and composites were investigated by scanning electron microscopy (SEM), infrared spectroscopy, X-ray diffraction, tensile and flexural tests, dynamic mechanical analysis (DMA), thermogravimetry (TGA) and diferential scanning calorimetry (DSC). The results of tensile tests indicated an increase in tensile strength of the composites after the chemical treatment of the fibers, with best results for the hydrogen peroxide treated fibers, even though the tensile strength of fibers was slightly reduced. This suggests a better interaction fiber/matrix which was also observed by SEM fractographs. The glass transition temperature (Tg) was reduced for all composites compared to the pure polymer which can be attributed to the absorption of solvents, moisture and other low molecular weight molecules by the fibers
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Dissertação de Mestrado Integrado em Medicina Veterinária
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Dissertação de Mestrado, Engenharia Biológica, Faculdade de Ciências e Tecnologia, Universidade do Algarve, 2014
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Sisal is a renewable agricultural resource adapted to the hostile climatic and soil conditions particularly encountered in the semi-arid areas of the state of Rio Grande do Norte. Consequently, sisal has played a strategic role in the economy of the region, as one of few options of income available in the semi-arid. Find new options and adding value to products manufactured from sisal are goals that contribute not only to the scientific and technological development of the Northeastern region, but also to the increase of the family income for people that live in the semi-arid areas where sisal is grown. Lignocellulosic fibers are extracted from sisal and commonly used to produce both handcrafted and industrial goods including ropes, mats and carpets. Alternatively, addedvalue products can be made using sisal to produce alumina fibers (Al2O3) by biotemplating, which consists in the reproduction of the natural fiber-like structure of the starting material. The objective of this study was to evaluate the conditions necessary to convert sisal into alumina fibers by biotemplating. Alumina fibers were obtaining after pretreating sisal fibers and infiltrating them with a Al2Cl6 saturated solution, alumina sol from aluminum isopropoxide or aluminum gas. Heat-treating temperatures varied from 1200 ºC to 1650 °C. The resulting fibers were then characterized by X-ray diffraction and scanning electronic microscopy. Fibers obtained by liquid infiltration revealed conversion only of the surface of the fiber into α-Al2O3, which yielded limited resistance to handling. Gas infiltration resulted in stronger fibers with better reproduction of the inner structure of the original fiber. All converted fibers consisted of 100% α-Al2O3 suggesting a wide range of technological applications especially those that require thermal isolation
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The gradual replacement of conventional materials by the ones called composite materials is becoming a concern about the response of these composites against adverse environmental conditions, such as ultraviolet radiation, high temperature and moist. Also the search for new composite using natural fibers or a blend of it with synthetic fibers as reinforcement has been studied. In this sense, this research begins with a thorough study of microstructural characterization of licuri fiber, as a proposal of alternative reinforcement to polymeric composites. Thus, a study about the development of two composite laminates was done. The first one, involving only the fiber of licuri and the second comprising a hybrid composite based of fiber glass E and the fiber of licuri, in order to know the performance of the fiber when of fiber across the hybridization process. The laminates were made in the form of plates using the tereftálica ortho-polyester resin as matrix. The composite laminate made only by licuri fiber had two reinforcing fabric layers of unidirectional licuri and the hybrid composite had two reinforcing layers of unidirectional licuri fabric and three layers of fiber short glass-E mat. Finally, both laminates was exposed to aging acceleration in order to study the influence of environmental degradation involving the mechanical properties and fracture characteristics thereof. Regarding the mechanical properties of composites, these were determined through uniaxial tensile tests, uniaxial compression and three bending points for both laminates in original state, and uniaxial tensile tests and three bending points after accelerated aging. As regards the study of structural degradation due to aging of the laminates, it was carried out based on microscopic analysis and microstructure, as well as measuring weight loss. The characteristics of the fracture was performed by macroscopic and microscopic (optical and SEM) analysis. In general, the laminated composites based on fiber licuri showed some advantages in their responses to environmental aging. These advantages are observed in the behavior related to stiffness as well as the microstructural degradation and photo-oxidation processes. However, the structural integrity of this laminate was more affected in case the action of uniaxial tensile loads, where it was noted a lower rate of withholding his last resistance property
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The use of gypsum, one of the oldest building materials for the construction industry in the country has been experiencing a significant and steady growth, due to its low cost and some of its properties that confer comparative advantage over other binder materials. Its use comprises various applications including the coating of walls and the production of internal seals and linings. Moreover, the fibers are being increasingly incorporated into arrays fragile in an attempt to improve the properties of the composite by reducing the number of cracks, the opening of the same and its propagation velocity. Other properties, depending on the function of the component material or construction, among these thermal and acoustic performances, are of great importance in the context of buildings and could be improved, that is, having better performance with this embodiment. Conduct a comparative study of physico-mechanical, thermal and acoustic composite gypsum incorporating dry coconut fiber, in the form of blanket, constituted the main objective of this work. Improving the thermal and acoustic performances of precast gypsum, used for lining and internal vertical fences of buildings, was the purpose of development of these composites. To evaluate the effect of fiber content on the properties of the composites were used to manufacture the composite layer with different thicknesses. The composites were fabricated in the form of plates with dimensions of 500x500x24mm. To facilitate the comparative study of the properties were also made with material gypsum boards only. We then determined the physico-mechanical, thermal and acoustical plaster and composites. The results indicated that the composites were significant gains in relation to thermal performance and also acoustic, in certain frequency range, increasing the thickness of the blanket. Concerning other physical-mechanical properties, the results showed that although the compressive strength was lower than for the composite did not occur after a fracture catastrophic failure. The same trend was observed with regard to resistance to bending, since the composites have not suffered sudden rupture and still continued after the load supporting point of maximum load
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This research was motivated by the requirement of asbestos s replacement in building systems and the need to generate jobs and income in the country side of the state of Bahia, Brazil. The project aimed at using fibers from licuri leaves (syagrus coronata), an abundant palm in the region, to produce composites appropriate for the sustainable production of cement fibre reinforced products in small plants. The composites were produced in laboratory using Portland cement CP-II-F32, sand, water, licuri palm fiber contents of 1.0, 1.5 and 2.0% by weight of binder (two different fiber length) and metakaolin. The latter was chosen as an additional binder for its efficiency to reduce the alkalinity of cementitious matrixes therefore preventing the degradation of vegetable fibers. The characterization of the composite components was carried out by sieving and laser particle size analyses, thermal analysis, fluorescence and X-ray diffraction. The composites performance was evaluated by 3- point-bending tests, compressive strength, ultrasound module of elasticity, free and restrained shrinkage, water capillarity absorption and apparent specific gravity. It has been found that the addition of fibers increased the time to onset of cracking over 200.00% and a 25% reduction in cracks opening in the restrained shrinkage test. The capillary absorption reduced about 25% when compared to fiber-free composites. It was also observed with regard to flexural strength, compressive strength and specific gravity, that the addiction of fibers did not affect the composite performance presenting similar results for compounds with and without fibers. In general it can be stated that the reinforced composite fibers of palm licuri presents physical and mechanical characteristics which enable them to be used in the intended proposals of this research
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A evolução dos betões, na procura de estruturas com um maior tempo de vida útil, melhor desempenho ou menores custos de manutenção, tem sido alvo de pesquisa por investigadores de todo o mundo. Neste sentido, o desenvolvimento dos betões de ultra-elevado desempenho (UHPC – Ultra High Performance Concrete), permitiu, desde o seu desenvolvimento inicial, uma multiplicidade de aplicações quer a nível estrutural ou arquitetónico, aportando a estes elementos, vantagens características deste material de construção. No entanto, e particularizando um dos seus constituintes, a aplicação tradicional de fibras metálicas na composição de UHPC, poderá originar alguns fenómenos indesejados de perda de durabilidade, nomeadamente por corrosão destas. Por consequência, julga-se pertinente encontrar alternativas a este componente, de forma a que se obtenha um nível de desempenho semelhante, diminuindo o risco de ocorrência dos fenómenos anteriormente referidos. Neste sentido, o estudo que aqui se apresenta, visa efetuar uma breve abordagem à aplicação de fibras em materiais alternativos tais como fibra de vidro ou fibra de polipropileno. Serão analisadas algumas propriedades em estado fresco e endurecido de várias misturas de betão, com diferentes aplicações de fibras, quer em tipo, quer em dosagem.
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En este trabajo de investigación, se diseñó y desarrollo un panel prefabricado para aplicaciones arquitectónicas, compuesto por fibras naturales. El panel fue elaborado a partir de una mezcla de fibras vegetales de tamo de arroz y cabuya, con partículas de arena silícea, los cuales, están aglomerados con una resina de silicato de sodio. La mezcla de estos materiales tiene buenas propiedades de trabajabilidad, compactación y con la aplicación de dióxido de carbono CO2, esta mezcla se solidifica rápidamente. Esta técnica, facilita el proceso de producción en serie de los paneles prefabricados de fibras naturales. A través del moldeo con una prensa manual, se obtuvo paneles con buenas propiedades y características de resistencia, módulo de ruptura, densidad y contenido de humedad; además de tener medidas modulares, texturas de agradable aspecto superficial y criterios de reversibilidad. Los paneles también presentan favorables cualidades de aislamiento térmico y acústico. Sus aplicaciones y utilidades son para revestimiento en espacios interiores de: muros, cielo raso y tabiquería liviana o decorativa. Finalmente se generó una propuesta de instalación de los paneles, utilizando de igual forma recursos renovables y sostenibles.
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2015
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Las proteínas amiloides son un grupo heterogéneo de proteínas diferentes en secuencia aminoacídica, pero similares en su estructura cuaternaria: fibras enriquecidas en láminas beta, con gran estabilidad, resistencia y capacidad de unión de colorantes específicos, como el rojo congo o la thioflavina T. Estas proteínas han estado tradicionalmente asociadas a patologías neurodegenerativas en humanos como el Alzheimer o el Parkinson. Sin embargo, los miembros dentro de esta familia están ampliamente distribuidas en la naturaleza, desde bacterias hasta humanos, e intervienen en un amplio rango de funciones biológicas, motivo por el que se han denominado “amiloides funcionales”. En bacterias, los amiloides funcionales son responsables de participar en funciones muy diversas como la interacción célula-célula, con superficies abióticas, y formación de biofilms. En Bacillus subtilis, la proteína amiloide TasA es el componente proteico mayoritario de la matriz extracelular del biofilm de este microorganismo y el principal elemento que constituye las fibras amiloides, mientras que la proteína auxiliar TapA, presente en mucha menor proporción, actúa favoreciendo el ensamblaje de las mismas. Estas actúan como un andamiaje proteico donde se disponen el resto de componentes de la matriz extracelular, lo que confiere a esta estructura una mayor estabilidad y, por consiguiente, proporcionan una mayor robustez al biofilm. En este este trabajo se pretende llevar a cabo el análisis de regiones o dominios tanto de TasA como de TapA importantes para la amiloidogénesis, así como para la funcionalidad de ambas proteínas. Para ello, el estudio se ha enfocado desde un punto de vista multidisciplinar, combinando pruebas clásicas de caracterización de amiloides con técnicas de biología molecular y diversas pruebas biofísicas. Los resultados obtenidos hasta la fecha han demostrado la existencia de pequeñas secuencias, dentro de las proteínas TasA o TapA con capacidad para polimerizar en la forma de fibras, lo que muestra su importancia en el proceso de fibrilación y en la funcionalidad de ambas proteínas. En el caso de la proteína TapA, las regiones analizadas ponen de manifiesto la importancia de su extremo amino-terminal tanto en la funcionalidad de la proteína como en su interacción con TasA.
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Dissertação (mestrado)—Universidade de Brasília, Faculdade de Tecnologia, Departamento de Engenharia Civil e Ambiental, 2016.
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2016
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El presente trabajo es un análisis descriptivo preliminar, sobre las actividades llevadas acabo en el plan de erradicación y contención del gusano rosado del algodonero Pectinophora gossypiella (Saunders), el cual se llevó a cabo en la “Isla del Maiz” (Corn lsland). localizada en el Océano Atlántico, en la Región Autónoma Atlantíco Sur (RAAS) de la República de Nicaragua. El objetivo principal de este trabajo consistió en determinar el efecto de la eliminación de los hospederos principales del "Gusano Rosado”, que son : Algodón Silvestre (Gossypium barbadense), Higuerilla (Ricinus communis) y algunos hospederos alternos que interactúan sobra su biologia y dinámica Poblacional. Se ubicaron trampas DELTAS de PRISMA con feromonas, con el objetivo de capturar adultos machos de Pectinophora gossypiella (Saunders). Esta plaga es facilmente confundible con el falso Gusano Rosado Colombiano (Sacacioces piralis). Gusano rosado, es una plaga cuarentenada en Nicaragua y restos de países del área Centro Americana; este insecto vive en malvaceas silvestres y cultivadas, atacando órganos reproductivos (Botones florales, flores, bellotas y motas), provoca la destrucción de semillas y las fibras, a la vez que sus daños y residuos fecales pueden ser fuente de infestación de hongos y bacterias fitopatogenas. Se realizaron inspeccionas de manera visual en diferentes áreas de la Isla para ubicar los focos de los hospederos ya determinados y posteriormente eliminarlos de forma mecanico-quimica, aplicándole al herbicida TORDON -101 (Pichloran 2, 4•D) a los tocones cortados y en ocasiones arrancar las plantas de forma manual desde sus raices, esto en dependencia de las dimensiones del tallo y tamaño de la planta en la medida que fuese posible arrancarlo del suelo. De la eliminación mecanico-quimica efectuado sobre los hospederos alimenticios de la plaga ya determinados (Algodón Silvestre e Higuerilla), se puede promediar un 95% de plantas huespedes eliminadas, para ambas especies, durante todo el periodo que duro nuestro trabajo. De igual forma se instalaron un total de 100 trampas DELTAS distribuidas en 5 rutas procurando cubrir el 95 % del territorio de la Isla del Maiz. Producto del monitoreo y el alto indice de capturas de adultos machos efecto de la actividad confucionista de la feromona sexual ubicada en cada una de las trampas, utilizado como método de control y erradicación de la plaga, nos indicaron que la población de adultos de gusano rosado presentaba una reducción considerable; lo cual demuestra que la eliminación de los hospederos afecta eficazmente la dinámica poblacional de esta plaga.